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Potent Antimicrobial agents derived from Combination of Transition metal with Sulfa drugs

Author Affiliations

  • 1Department of Chemistry, M N College, Visnagar, 384315, Gujarat, India
  • 2Department of Chemistry, M N College, Visnagar, 384315, Gujarat, India

Res.J.chem.sci., Volume 6, Issue (3), Pages 20-24, March,18 (2016)

Abstract

In the present study a noval 4-oxo - 4-[{4-(N-(thiazol-2-yl)sulfamoyl) phenyl} amino] butanoic acid (OTSPAB) was prepared by reaction of succinic anhydride with Sulphathiazol. The prepared ligand was exemplified by physical and spectroscopic studies. The transition metal complexes viz. Cu2+, Ni2+ , Co2+, Mn2+ and Zn2+ of OTSPAB were synthesized and characterized by different properties. All the prepared metal complexes and ligand were studies as antimicrobial agent. Among all the metal complexes, Zn2+ and Cu2+ metal complexes have shown significant activity.

References

  1. Chohan Z.H., Praveen M. and Ghaffar A. (1997)., Structural and biological behaviour of Co (II), Cu (II) and Ni(II) metal complexes of some amino acid derived Schiff-bases., Metal-Based Drugs, 4(5), 267–272.
  2. Chohan Z.H., Scozzafava A., Supuran C.T. (2002)., Unsymmetrical 1,1-disubstituted ferrocenes: synthesis of Co(II), Cu(II), Ni(II)and Zn(II) chelates of ferrocenyl -1- thiadiazolo-1_-tetrazole, -1-thiadiazolo-1_ -triazole and -1-tetrazolo-1_ -triazole with antimicrobial properties., Journal of Enzyme Inhibition and Medicinal Chemistry, 17(4), 261–266.
  3. Chohan Z.H. and Kausar S. (1993)., Synthesis, structural and biologicalstudies of nickel (II), copper(II) and zinc(II) chelates with tridentate Schiff bases having NNO and NNS donor systems., Chemical and Pharmaceutical Bulletin, 41(5), 951–953.
  4. Ul-Hassan M., Chohan Z.H., Scozzafava A. and Supuran C.T. (2004)., Carbonicanhydrase inhibitors: Schiff’s bases of aromatic and heterocyclicsulfonamides and their metal complexes., Journal of Enzyme Inhibition and Medicinal Chemistry, 19(3), 263–267.
  5. Ul-Hassan M., Chohan Z.H., Supuran C.T. (2002), Antibacterial Zn(II) compounds of Schiff bases derived from some benzothiazoles., Main Group Metal Chemistry, 25(5), 291296.
  6. Chohan Z.H., Scozzafava A. and Supuran C.T. (2003)., Zinc complexes ofbenzothiazole-derived chiff bases with antibacterial activity., Journal of Enzyme Inhibition and Medicinal Chemistry, 18(3), 259–263.
  7. Seven M.J. and Johnson L.A. (1960)., Metal Binding in Medicine., 4th ed. Philadelphia, Pa: Lippincott; 19-22.
  8. Srivastava R.S. (1990)., Studies on some antifungal transition metal chelates of 2-(2- hydroxybenzylideneamino) benzimidazole., Indian Journal of Chemistry, 29A, 1024-1029.
  9. Patel V.K., Vasanwala A.M. and Jejurkar C.N. (1989)., Synthesis of mixed Schiff base complexes of copper (II) and nickel (II) and their spectral, magnetic and antifungal studies., Indian Journal of Chemistry. 28A, 719.
  10. Maggio F., Pellerito A., Pellerito L., Grimaudo S., Mansueto C. and Vitturi R.(1994)., Organo metallic complexes with biological molecules II. Synthesis, solid-state characterization and in vivo cytotoxicity of diorganotin(IV)chloro and triorgano tin (IV) chloro derivatives of penicillin G., Applied Organometallic Chemistry, 8(1),71–85.
  11. Vitturi R., Mansueto C., Gianguzza A., Maggio F., Pellerito A. and Pellerito L.(1994)., Organometallic complexes with biologicalmolecules. III: in vivo cytotoxicity of diorganotin (IV) chloroand triorganotin (IV) chloro derivatives of penicillin g on chromosomesof aphanius fasciatus (pisces, cyprinodontiformes)., Applied Organometallic Chemistry, 8(6), 509–515.
  12. Pellerito L., Maggio F., Consigilo A., Pellerito A., Stocco G.C. and Gremaudo S. (1995)., Organometallic complexes with biologicalmolecules. IV: Di- and tri-organotin (IV) amoxicillin derivatives: Solid-state and solution-phase spectroscopic investigations., Applied Organometallic Chemistry, 9(3), 227–239.
  13. Vitturi R., Zava B., Colomba M.S., Pellerito A., Maggio F. and Pellerito L. (1995)., Organo metallic complexes with biological molecules. V: invivo cytotoxicity of diorgano tin(IV)- amoxicillin derivatives inmitotic chromosomes of rutilus rubilio (pisces, Cyprinidae)., Applied Organometallic Chemistry, 9(7), 561–566.
  14. Rosenberg B. and Van Camp L. (1970)., The successful regression of large solid sarcoma 180 tumors by platinum compounds., Cance Research, 30(6), 1799–1802.
  15. Cleare M.J. and Hoeschele J.D. (1973)., Studies on the antitumor activity of group VIII transition metal complexes. I. Platinum (II) complexes., Bioinorganic Chemistry, 2(3), 187–210.
  16. Narayanan V.A., Nasr M. and Paull K.D. (1990)., Tin Based Antitumour Drugs., Berlin, Germany: Springer, NATO ASI Series, Vol H 37.
  17. Crowe A.J. (1988)., The antitumour activity of tin compounds., Metal Based Antitumour Drugs. Vol. 1. London, UK: Freud, 103–149.
  18. Saxena A.K. (1987)., Organotin compounds: toxicology and biomedicinal applications., Applied Organometallic Chemistry. 1(1), 39–56.
  19. Furst A. (1963)., The Chemistry of Chelation in Cancer., 3rd ed. Springfield, Ill: Thomas; 67-74.
  20. Williams D.R. (1972)., Thermodynamic considerations in coordination., Part X. A. potentiometric and calorimetric investigation of copper(II) histidine complexes in solution. Journal of the Chemical Society. Dalton Transactions, 7, 790–797.
  21. Jones A.D. and Williams D.R. (1971)., Thermodynamic considerations inco-ordination., Part IX. Heat capacity investigations into complex formation between some lanthanide (III) ions and histidine. Journal of the Chemical Society A. 3159–3162.
  22. Pratt J.M. (1972)., Inorganic Chemistry of Vitamin B12., London, UK: Academic Press.
  23. Shapiro S.K. and Schlenk F. (1965)., Transmethylation and Methionine Biosynthesis., Chicago, Ill: University of Chicago Press.
  24. Vullo D., De Luca V., Scozzafava A., Carginale V., Rossi M., Supuran C.T. and Capasso C. (2013)., The extremo-α-carbonic anhydrase from the thermophilic bacterium Sulfurihydrogenibium azorense is highly inhibited by sulfonamides., Bioorg. and Med., Chem., 21, 4521
  25. Wilson C.O., Gisvold O., Block J.H. (2004)., Wilson and Gisvold’s Textbook of Organic Medicinal and Pharmaceutical Chemistry, 11th ed., Block J., Beale J.M., Eds., Lippincott Williams and Wilkins: Philadelphia.
  26. Levin J.I., Chen J.M., Du M.T., Nelson F.C., Killar L.M., Skala S., Sung A., Jin G., Cowling R., Barone D., March C.J., Mohler K.M., Black R.A. and Skotnicki J.S. (2002)., Anthranilate sulfonamide hydroxamate TACE inhibitors., Part 2: SAR of the acetylenic P1’ group. Bioorg. and Med. Chem. Lett., 12, 1199.
  27. Kim D.K., Lee J.Y., Lee N., Ryu D.H., Kim J.S., Lee S., Choi J.Y., Ryu J.H., Kim N.H., Im G.J., Choi W.S. and Kim T.K. (2001)., Synthesis and phospho diesterase inhibitory activity of new sildenafil analogues containing a carboxylic acid group in the 5’-sulfonamide moiety of a phenyl ring., Bioorg. and Med. Chem., 9, 3013.
  28. Hu B., Ellingboe J., Han S., Largis E., Lim K., Malamas M., Mulvey R., Niu C., Oliphant A., Pelletier J., Singanallore T., Sum F.W., Tillett J. and Wong V. (2001)., Novel (4-Piperidin-1-yl)-phenyl Sulfonamides as Potent and Selective Human b3 Agonists., Bioorg. and Med. Chem., 8, 2045.
  29. Patil B.R. (2006)., Synthesis and characterization of matel complex., Oriental J. Chem., 18, 547.